Cite

[1] EMBERLEY, R., DO, T., YIM, J., TORERO, J., L. 2017. Critical heat flux and mass loss rate for extinction of flaming combustion timber. Fire Safety Journal, 91(1), 252-258. ISSN 0379-7112.Search in Google Scholar

[2] MEINIER, R., SONNIER, R., ZAVALETA, P., SUARD, S., FERRY, L. 2018. Fire behaviour of halogen-free flame retardant electrical cables with the cone calorimeter. Journal of Hazardous Materials, 342(1), 306-316. ISSN 0304-3894.Search in Google Scholar

[3] RANTUCH, P., STEFKO, T., MARTINKA, J. 2018. Critical heat flux determination of electric cable insulation. Research papers Faculty of Materials Science and Technology Slovak University of Technology in Trnava, 26(42), 11-20. ISSN 1336-1589.Search in Google Scholar

[4] ZACHAR, M., LIESKOVSKZ, M., MAJLINGOVA, A., MITTEROVA, I. 2018. Comparison of thermal properties of the fast-growing tree species and energy crop species to be used as a renewable and energy-efficient resource. Journal of Thermal Analysis and Calorimetry, 134(1), 543-548. ISSN 1388-6150.Search in Google Scholar

[5] DUONG, T., T., TUNG, T., TANAKA, H., TSUZUKI, N., KAWAI, H., KIKURA, H. 2015. Effect of cooling temperature of electrodes on Joule-heating flow in cubic cavity. Progress in Nuclear Energy, 82(1), 165-175. ISSN 0149-1970.Search in Google Scholar

[6] KIM, S., H., LEE, K., W. 2015. Numerical approach to joule heating analysis for electrical parts using MSC Marc. Journal of Mechanical Science and Technology, 29(5), 2081-2087. ISSN 1738-494X.10.1007/s12206-015-0429-ySearch in Google Scholar

[7] IEC 60364-5-52:2009/Cor.1:2011. 2011. Low voltage electrical installations. Part 5-52: Selection and erection of electrical equipment - Wiring systems. 3rd ed. Geneva: International Electrotechnical Commission, 2011. 171 p.Search in Google Scholar

[8] KAUFMAN, S., REFI, J., J., ANDERSON, R., C. 1991. USA approach to combustion toxicity of cables. Plastics, Rubber and Composites Processing and Applications, 15(3), 137-143. ISSN 0959-8111.Search in Google Scholar

[9] HIRSCHLER, M., M., GRAND, A., F. 1993. Comparison of the smoke toxicity of four vinyl wire and cable compounds using different test methods. Fire and Materials, 17(2), 79-90. ISSN 1099-1018.Search in Google Scholar

[10] GANN, R., G., PEACOCK, R., D., AVERILL, J., D., NYDEN, M., R. 2006. Smoke toxicity data for fire hazard and risk assessment of cable products. Journal of ASTM International, 3(2), 96-100. ISSN 1546-962X.10.1520/JAI12852Search in Google Scholar

[11] EINBRODT, J., JESSE, H. 1984. Toxicity of gases from cable fires I. International Polymer Science and Technology, 11(12), 1-6. ISSN 0307-174X.Search in Google Scholar

[12] HIRSCHLER, M., M., PURSER, D., A. 1993. Irritancy of the smoke (non-flaming mode) from materials used for coating wire and cable products, both in the presence and absence of halogens in their chemical composition. Fire and Materials, 17(1), 7-20. ISSN 1099-1018.10.1002/fam.810170103Search in Google Scholar

[13] RAO, B., N., ARUNJOTHI, R., SRINIVASAN, A., R. 2012. Assessing smoke and fire hazard of burning electric cables. In: 10th IEEE International Conference on the Properties and Applications of Dielectric Materials. Institute of Electrical and Electronics Engineers: India, Bangalore, pp. 1-4. ISBN 978-146732850-0.Search in Google Scholar

[14] POKORNY, J., MOZER, V., MALEROVA, L., DLOUHA, D., WILKINSON, P. 2018. A simplified method for establishing safe available evacuation time based on a descending smoke layer. Communications - Scientific Letters of the University of Žilina, 20(2), 28-34. ISSN 1335-4205.Search in Google Scholar

[15] EN 13501-6:2018. 2018. Fire classification of construction products and building elements. Part 6: Classification using data from reaction to fire tests on power, control and communication cables. Brussels: European Committee for Standardization, 2018. 32 p.Search in Google Scholar

[16] STN 92 0205:2014. 2014. Fire behaviour of construction products and building constructions. Circuit integrity maintenance of cable systems. Requirements, testing, classification and application of test results. Bratislava: Slovak Office of Standards, Metrology and Testing, 2014. 14 p.Search in Google Scholar

[17] IEC 60331-21:1999. 1999. Tests for electric cables under fire conditions. Circuit integrity. Part 21: Procedures and requirements. Cables of rated voltage up to and including 0.6/1.0 kV. 1st ed. Geneva: International Electrotechnical Commission, 1999. 19 p.Search in Google Scholar

[18] IEC 60331-23:1999. 1999. Tests for electric cables under fire conditions - Circuit integrity - Part 23: Procedures and requirements - Electric data cables. 1st ed. Geneva: International Electrotechnical Commission, 1999. 19 p.Search in Google Scholar

[19] IEC 60331-25:1999. 1999. Tests for electric cables under fire conditions - Circuit integrity - Part 25: Procedures and requirements - Optical fibre cables. 1st ed. Geneva: International Electrotechnical Commission, 1999. 13 p.Search in Google Scholar

[20] REGULATION (EU) No 305/2011 of the European Parliament and of the Council of 9 March 2011 laying down harmonised conditions for the marketing of construction products and repealing Council Directive 89/106/EEC.Search in Google Scholar

[21] STN 92 0203/O1:2013. 2013. Fire protection of buildings. Continuous power supply responding for fire. Bratislava: Slovak Office of Standards, Metrology and Testing, 2014. 18 p.Search in Google Scholar

[22] DECREE of MV CR 23/2008 Sb., on the technical conditions of fire protection of structures.Search in Google Scholar

[23] ISO 1716:2018. 2018. Reaction to fire tests for products. Determination of the gross heat of combustion (calorific value). 4th ed. Geneva: International Organization for Standardization, 2018. 30 p.Search in Google Scholar

[24] WALTERS, R., N., HACKETT, S., M., LYON, R., E. 2000. Heats of combustion of high temperature polymers. Fire and Materials, 24(5), 245-252. ISSN 1099-1018.Search in Google Scholar

[25] KARLSSON, B., QUINTIERE, J., G. 1999. Enclosure Fire Dynamics. 1st ed. Boca Raton: CRC Press, 1999. 336 p. ISBN 978-084931300-4.Search in Google Scholar

[26] DRYSDALE, D., D. 2016. Thermochemistry. In: Hurley, M., J., editor. SFPE Handbook of Fire Protection Engineering. 5th ed. New York: Springer, 2016. pp. 138-150. ISBN 978-1-4939-2564-3.Search in Google Scholar

[27] TSIAMIS, D., A., CASTALDI, M., J. 2016. Determining Accurate Heating Values of Non-Recycled plastics (NRP). 1st ed. New York: City University of New York, 2016. 27 p. ISBNSearch in Google Scholar

[28] HASBURGH, L., E., WHITE, R., H., DIETENBERGER, M., A., BOARDMAN, C., R. 2015. Comparison of the heat release rate from the mass loss calorimeter to the cone calorimeter for wood-based materials. In: Proceedings of Conference the Fire and Materials 2015. The 14th International Conference and Exhibition on Fire and Materials 2015. Interscience communications: United Kingdom, Hampshire, pp. 116-126. ISBN 978-151081410-3.Search in Google Scholar

[29] GUNTHER, B., GEBAUER, K., BARKOWSKI, R., ROSENTHAL, M., BUES, C., T. 2012. Calorific value of selected wood species and wood products. European Journal of Wood and Wood Products, 70(5), 755-757. ISSN 0018-3768.Search in Google Scholar

[30] MARKOVA, I., REH, R., OREMUSOVA, E. 2010. Calorimetric determination of combustion heat and net caloric value of selected solid organic fuels. In: Proceedings of Conference of the Fire Engineering 2010. The 3rd International Scientific Conference on Fire Engineering 2010. Technical University in Zvolen: Slovakia, Zvolen, pp. 235-242. ISBN 978-80-89241-38-5.Search in Google Scholar

[31] MARTINKA, J., RANTUCH, P., SULOVA, J., MARTINKA, F. 2019. Assessing the fire risk of electrical cables using a cone calorimeter. Journal of Thermal Analysis and Calorimetry, 135(6), 3069-3083. ISSN 1388-6150.Search in Google Scholar

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